Embryonic Stem Cell-Based Cardiopatches Improve Cardiac Function in Infarcted Rats

Author:

Vallée Jean-Paul1,Hauwel Mathieu2,Lepetit-Coiffé Matthieu1,Bei Wang2,Montet-Abou Karin1,Meda Paolo3,Gardier Stephany1,Zammaretti Prisca2,Kraehenbuehl Thomas P.2,Herrmann Francois4,Hubbell Jeffrey A.5,Jaconi Marisa E.2

Affiliation:

1. Department of Radiology, Geneva University Hospitals and University of Geneva, Geneva, Switzerland

2. Department of Pathology and Immunology, Faculty of Medicine, Geneva University, Geneva, Switzerland

3. Department of Cell Physiology and Metabolism, Faculty of Medicine, Geneva University, Geneva, Switzerland

4. Department of Rehabilitation and Geriatrics, Geneva University Hospitals, Geneva, Switzerland

5. Institute for Bioengineering, École Polytechnique Fédérale de Lausanne, Lausanne, Switzerland

Abstract

Abstract Pluripotent stem cell-seeded cardiopatches hold promise for in situ regeneration of infarcted hearts. Here, we describe a novel cardiopatch based on bone morphogenetic protein 2-primed cardiac-committed mouse embryonic stem cells, embedded into biodegradable fibrin matrices and engrafted onto infarcted rat hearts. For in vivo tracking of the engrafted cardiac-committed cells, superparamagnetic iron oxide nanoparticles were magnetofected into the cells, thus enabling detection and functional evaluation by high-resolution magnetic resonance imaging. Six weeks after transplantation into infarcted rat hearts, both local (p < .04) and global (p < .015) heart function, as well as the left ventricular dilation (p < .0011), were significantly improved (p < .001) as compared with hearts receiving cardiopatches loaded with iron nanoparticles alone. Histological analysis revealed that the fibrin scaffolds had degraded over time and clusters of myocyte enhancer factor 2-positive cardiac-committed cells had colonized most of the infarcted myocardium, including the fibrotic area. De novo CD31-positive blood vessels were formed in the vicinity of the transplanted cardiopatch. Altogether, our data provide evidence that stem cell-based cardiopatches represent a promising therapeutic strategy to achieve efficient cell implantation and improved global and regional cardiac function after myocardial infarction.

Funder

Leenaards Foundation

Swiss National Science Foundation FNS

Swiss National Science Foundation

European Union

Publisher

Oxford University Press (OUP)

Subject

Cell Biology,Developmental Biology,General Medicine

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